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Non-line-of-sight Imaging with Partial Occluders and Surface Normals

机译:具有部分遮挡物和表面法线的非视线成像

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Imaging objects obscured by occluders is a significant challenge for many applications. A camera that could "see around corners" could help improve navigation and mapping capabilities of autonomous vehicles or make search and rescue missions more effective. Time-resolved single-photon imaging systems have recently been demonstrated to record optical information of a scene that can lead to an estimation of the shape and reflectance of objects hidden from the line of sight of a camera. However, existing non-line-of-sight (NLOS) reconstruction algorithms have been constrained in the types of light transport effects they model for the hidden scene parts. We introduce a factored NLOS light transport representation that accounts for partial occlusions and surface normals. Based on this model, we develop a factorization approach for inverse time-resolved light transport and demonstrate high-fidelity NLOS reconstructions for challenging scenes both in simulation and with an experimental NLOS imaging system.
机译:遮挡物遮挡的成像对象对于许多应用而言是一项重大挑战。可以“看见角落”的摄像机可以帮助改善自动驾驶汽车的导航和地图绘制功能,或者使搜索和救援任务更加有效。最近已证明时间分辨单光子成像系统可以记录场景的光学信息,从而可以估计隐藏在摄像机视线范围内的物体的形状和反射率。但是,现有的非视距(NLOS)重建算法已在它们为隐藏场景部分建模的光传输效果的类型中受到限制。我们介绍了一个因子分解的NLOS光传输表示,该表示可以解决部分遮挡和表面法线的问题。基于此模型,我们开发了逆时间分辨光传输的分解方法,并在模拟和实验NLOS成像系统中展示了高保真NLOS重建技术,可应对挑战性场景。

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